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Published on: June 3, 2018
Prolonged Cre expression driven by the α-myosin heavy chain promoter can be cardiotoxic
Emily K Pugach1, Phillip A Richmond1, Joseph G Azofeifa2
1University of Colorado at Boulder, Department of Molecular, Cellular, and Developmental Biology, BioFrontiers Institute, Boulder, CO 80303 USA.
Abstract:
Studying the importance of genetic factors in a desired cell type or tissue necessitates the use of precise genetic tools. With the introduction of bacteriophage Cre recombinase/loxP mediated DNA editing and promoter-specific Cre expression, it is feasible to generate conditional knockout mice in which particular genes are disrupted in a cell type-specific manner in vivo. In cardiac myocytes, this is often achieved through α-myosin heavy chain promoter (αMyHC)-driven Cre expression in conjunction with a loxP-site flanked gene of interest. Recent studies in other cell types demonstrate toxicity of Cre expression through induction of DNA damage. However, it is unclear to what extent the traditionally used αMyHC-Cre line [1] may exhibit cardiotoxicity. Further, the genotype of αMyHC-Cre(+/-) is not often included as a control group in cardiac myocyte-specific knockout studies. Here we present evidence that these αMyHC-Cre(+/-) mice show molecular signs of cardiac toxicity by 3months of age and exhibit decreased cardiac function by 6months of age compared to wild-type littermates. Hearts from αMyHC-Cre(+/-) mice also display evidence of fibrosis, inflammation, and DNA damage. Interestingly, some of the early functional changes observed in αMyHC-Cre(+/-) mice are sexually dimorphic. Given the high level of Cre recombinase expression resulting from expression from the αMyHC promoter, we asked if degenerate loxP-like sites naturally exist in the mouse genome and if so, whether they are affected by Cre in the absence of canonical loxP-sites. Using a novel bioinformatics search tool, we identified 619 loxP-like sites with 4 or less mismatches to the canonical loxP-site. 227 sites overlapped with annotated genes and 55 of these genes were expressed in cardiac muscle. Expression of ~26% of the 27 genes tested was disrupted in αMyHC-Cre(+/-) mice indicating potential targeting by Cre. Taken together, these results highlight both the importance of using αMyHC-Cre mice as controls in conditional knockout studies as well as the need for a less cardiotoxic Cre driver for the field.
Insights
The alpha-myosin heavy chain promoter (αMyHC)-driven Cre driver line in mice can cause cardiac toxicity, leading to DNA damage and reduced heart function. Researchers recommend using this line as a control and developing less cardiotoxic alternatives.
Area of Science:
- Cardiovascular Biology
- Genetics and Genomics
- Molecular Biology
Background:
- Conditional knockout mice are crucial for studying gene function in specific cell types.
- The alpha-myosin heavy chain promoter (αMyHC)-driven Cre recombinase system is widely used for cardiac-specific gene disruption.
- Potential cardiotoxicity of the αMyHC-Cre driver line has not been fully investigated.
Purpose of the Study:
- To evaluate the cardiotoxicity of the αMyHC-Cre driver line in mice.
- To investigate off-target DNA recombination events mediated by Cre recombinase.
- To highlight the importance of appropriate controls in conditional knockout studies.
Main Methods:
- Assessment of cardiac function and molecular markers in αMyHC-Cre(+/-) mice and wild-type littermates.
- Histological analysis of heart tissue for fibrosis, inflammation, and DNA damage.
- Bioinformatic analysis to identify and characterize loxP-like sites in the mouse genome.
- Gene expression analysis to detect Cre-mediated disruption of endogenous genes.
Main Results:
- αMyHC-Cre(+/-) mice exhibited molecular signs of cardiac toxicity by 3 months and decreased cardiac function by 6 months.
- Cardiac tissue showed evidence of fibrosis, inflammation, and DNA damage.
- Bioinformatic analysis identified numerous loxP-like sites in the mouse genome, with some overlapping expressed genes.
- Approximately 26% of tested cardiac genes showed disrupted expression in αMyHC-Cre(+/-) mice, suggesting off-target Cre activity.
Conclusions:
- The αMyHC-Cre driver line can induce cardiotoxicity and off-target genetic modifications.
- αMyHC-Cre(+/-) mice are essential controls in cardiac conditional knockout studies.
- Development of less cardiotoxic Cre driver lines is needed for precise genetic studies in the heart.
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